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Dynamic heat exchanger model for performance prediction and control system design of automotive waste heat recovery systems

机译:用于汽车余热回收系统性能预测和控制系统设计的动态换热器模型

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摘要

Waste heat recovery by means of a Rankine Cycle is a promising approach for achieving significant reductions in fuel consumption and, as a result, exhaust emissions of passenger car engines. This approach is already well established in industrial applications such as gas and steam power plants or ship propulsion systems. While these systems are mainly designed for stationary operation, the behaviour in highly dynamic operating conditions becomes more important when the principle is transferred to a passenger car engine. Knowledge of the dynamic response of the employed heat exchangers plays an important rele in performance prediction and control system design of the steam cycle. Hence, a dynamic model of the exhaust gas heat exchanger employing the moving-boundary principle was developed and is presented in this paper. The model describes both design operation and the heat-up procedure of the component. For achieving high model accuracy in the resulting broad range of operating conditions, new approaches for modelling wall temperature distribution and zone switching were developed. Simulations of stationary operating points as well as the response to typical disturbances of the system's input variables are in good agreement with test bench measurements. The model is used to develop a control system for dynamic operation on the test bench. Further studies of the operating characteristics reveal varying dynamic behaviour depending on the heat flow rate from exhaust gas to working fluid as well as coupling of evaporation pressure and outlet steam temperature.
机译:通过朗肯循环的余热回收是一种有望显着减少燃料消耗并因此减少乘用车发动机废气排放的有前途的方法。这种方法已经在诸如燃气和蒸汽发电厂或船舶推进系统的工业应用中得到了很好的确立。尽管这些系统主要是为固定运行而设计的,但是当原理被转移到乘用车发动机时,在高动态运行条件下的行为变得更加重要。对所使用的热交换器的动态响应的了解在蒸汽循环的性能预测和控制系统设计中起着重要的作用。因此,建立并提出了一种基于移动边界原理的废气热交换器的动力学模型。该模型描述了组件的设计操作和加热程序。为了在由此产生的广泛操作条件下实现较高的模型精度,开发了用于模拟壁温分布和区域切换的新方法。固定工作点的仿真以及对系统输入变量的典型干扰的响应与测试台的测量非常吻合。该模型用于开发控制系统,以在测试台上进行动态操作。对工作特性的进一步研究表明,取决于从废气到工作流体的热流量以及蒸发压力和出口蒸汽温度的耦合,动态行为会发生变化。

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